Symmetry Breaking and Transition to Robust Excitonic Topological Order in InAs/GaSb Bilayers

Fuente: arXiv
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Main Authors: Wang, Xinghao, Zhang, Wenfeng, Dong, Yujiang, Qiao, Weiliang, Jia, Peizhe, Du, Rui-Rui
Format: Preprint
Published: 2026
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_version_ 1866918381958987776
author Wang, Xinghao
Zhang, Wenfeng
Dong, Yujiang
Qiao, Weiliang
Jia, Peizhe
Du, Rui-Rui
author_facet Wang, Xinghao
Zhang, Wenfeng
Dong, Yujiang
Qiao, Weiliang
Jia, Peizhe
Du, Rui-Rui
contents Symmetry and topology are fundamental concepts deeply intertwined in various fields of physics, especially in the studies of quantum phases of matter. The critical role that Coulomb interactions play in symmetry breaking during topological transitions is a fundamental problem that has not been fully understood. Utilizing gated indium arsenide-gallium antimonide bilayers, we demonstrate that Coulomb interactions play a critical role in symmetry breaking and topological transitions. Whereas the quantum spin Hall insulator (QSHI) dominates the high-density regime, gating the system into the dilute regime enhances interlayer Coulomb interactions and leads to an emergent excitonic topological order (ETO) with spontaneous time-reversal-symmetry breaking. Moreover, applying a magnetic field drives a transition from the QSHI to the ETO accompanied by Coulomb-induced spin-rotation-symmetry breaking, which selects triplet electron-hole pairing in the lowest Landau levels. These results underscore an intricate interplay between symmetry and topology under Coulomb interactions in electron-hole bilayers.
format Preprint
id arxiv_https___arxiv_org_abs_2603_10363
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Symmetry Breaking and Transition to Robust Excitonic Topological Order in InAs/GaSb Bilayers
Wang, Xinghao
Zhang, Wenfeng
Dong, Yujiang
Qiao, Weiliang
Jia, Peizhe
Du, Rui-Rui
Mesoscale and Nanoscale Physics
Symmetry and topology are fundamental concepts deeply intertwined in various fields of physics, especially in the studies of quantum phases of matter. The critical role that Coulomb interactions play in symmetry breaking during topological transitions is a fundamental problem that has not been fully understood. Utilizing gated indium arsenide-gallium antimonide bilayers, we demonstrate that Coulomb interactions play a critical role in symmetry breaking and topological transitions. Whereas the quantum spin Hall insulator (QSHI) dominates the high-density regime, gating the system into the dilute regime enhances interlayer Coulomb interactions and leads to an emergent excitonic topological order (ETO) with spontaneous time-reversal-symmetry breaking. Moreover, applying a magnetic field drives a transition from the QSHI to the ETO accompanied by Coulomb-induced spin-rotation-symmetry breaking, which selects triplet electron-hole pairing in the lowest Landau levels. These results underscore an intricate interplay between symmetry and topology under Coulomb interactions in electron-hole bilayers.
title Symmetry Breaking and Transition to Robust Excitonic Topological Order in InAs/GaSb Bilayers
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2603.10363